The time course of recovery from use-dependent block of sodium channels caused by local anesthetics was studied in squid axons. In the presence of lidocaine or its quaternary derivatives, QX-222 and QX-314, or 9-aminoacridine (9-AA), recovery from use-dependent block occurred in two phases: a fast phase and a slow phase. Only the fast phase was observed in the presence of benzocaine. The fast phase had a time constant of several milliseconds and resembled recovery from the fast Na inactivation in the absence of drug. Depending on the drug present, the magnitude of the time constant of the slow phase varied (for example at -80 mV): lidocaine, 270 ms; QX-222, 4.4 s; QX-314, 17 s; and 9-AA, 14 s. The two phases differed in the voltage dependen...
Voltage-gated sodium (Nav) channels are therapeutic targets for several disorders affecting humans, ...
This study assesses the importance of local anesthetic charge and hydrophobicity in determining the ...
During diastole, tertiary amine local anesthetic molecules may exit cardiac sodium channels quickly ...
The interaction of QX222, a quaternary ammonium derivative of lidocaine, with the Na channel was stu...
The inhibition of sodium currents by local anesthetics and other blocking compounds was studied in p...
Blocking action of Na channels by QX-314, a quaternary derivative of lidocaine, was studied in inter...
A voltage clamp technique was used to study sodium currents and gating currents in squid axons inter...
Lidocaine produces voltage- and use-dependent inhibition of voltage-gated Na+ channels through prefe...
The effects of disopyramide (Norpace) and 14 closely related structural analogues on the Na current ...
The recovery of the sodium channel from blockade by local anesthetic antiarrhythmic drugs is voltage...
Gating current (Ig) underlying Na-channel activation is large enough to enable resolution of compone...
AbstractWhen depolarized from typical resting membrane potentials (Vrest ∼ −90mV), cardiac sodium (N...
recovery kinetics in atria1 cells exposed to lidocaine. Am. J. Physiol. 255 (Heart Circ. Physiol. 24...
Abstract. The membrane of immature Xenopus oocytes is known to possess a peculiar type of sodium cha...
The effects of benzocaine (0.5–1 mM) on normal Na currents, and on Na current and gating charge move...
Voltage-gated sodium (Nav) channels are therapeutic targets for several disorders affecting humans, ...
This study assesses the importance of local anesthetic charge and hydrophobicity in determining the ...
During diastole, tertiary amine local anesthetic molecules may exit cardiac sodium channels quickly ...
The interaction of QX222, a quaternary ammonium derivative of lidocaine, with the Na channel was stu...
The inhibition of sodium currents by local anesthetics and other blocking compounds was studied in p...
Blocking action of Na channels by QX-314, a quaternary derivative of lidocaine, was studied in inter...
A voltage clamp technique was used to study sodium currents and gating currents in squid axons inter...
Lidocaine produces voltage- and use-dependent inhibition of voltage-gated Na+ channels through prefe...
The effects of disopyramide (Norpace) and 14 closely related structural analogues on the Na current ...
The recovery of the sodium channel from blockade by local anesthetic antiarrhythmic drugs is voltage...
Gating current (Ig) underlying Na-channel activation is large enough to enable resolution of compone...
AbstractWhen depolarized from typical resting membrane potentials (Vrest ∼ −90mV), cardiac sodium (N...
recovery kinetics in atria1 cells exposed to lidocaine. Am. J. Physiol. 255 (Heart Circ. Physiol. 24...
Abstract. The membrane of immature Xenopus oocytes is known to possess a peculiar type of sodium cha...
The effects of benzocaine (0.5–1 mM) on normal Na currents, and on Na current and gating charge move...
Voltage-gated sodium (Nav) channels are therapeutic targets for several disorders affecting humans, ...
This study assesses the importance of local anesthetic charge and hydrophobicity in determining the ...
During diastole, tertiary amine local anesthetic molecules may exit cardiac sodium channels quickly ...